(19)
(11) EP 0 191 932 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
10.10.1990 Bulletin 1990/41

(21) Application number: 85116014.3

(22) Date of filing: 16.12.1985
(51) International Patent Classification (IPC)5B60G 17/00, F16F 9/46

(54)

Vehicle

Fahrzeug

Véhicule


(84) Designated Contracting States:
DE FR GB

(30) Priority: 14.01.1985 JP 3241/85

(43) Date of publication of application:
27.08.1986 Bulletin 1986/35

(73) Proprietor: TOYOTA JIDOSHA KABUSHIKI KAISHA
Aichi-ken 471 (JP)

(72) Inventor:
  • Yano, Toshihide Room 6207 Toyota No. 2 Higashi
    shi Shizuoka-ken (JP)

(74) Representative: Grams, Klaus Dieter, Dipl.-Ing. et al
Patentanwaltsbüro Tiedtke-Bühling-Kinne & Partner Bavariaring 4
80336 München
80336 München (DE)


(56) References cited: : 
DE-A- 2 331 684
JP-A-59 164 214
US-A- 3 770 292
JP-A-59 048 210
JP-A-60 053 417
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description


    [0001] This invention relates to a vehicle, and more particularly to a vehicle provided with a suspension capable of varying the characteristics thereof, according to the preamble of claim 1. A vehicle of this kind is known from document JP-A-59 164214.

    [0002] With this vehicle the characteristics of a suspension such as damping force of a shock absorber and spring constant of an air spring surrounding the shock absorber are constituted variably to be adjusted during travelling. By the automobile can be provided a ride comfort and controllability corresponding the travelling condition.

    [0003] Now, when a vehicle is travelling particularly with high speed and receives side wind, unstable factors such as the lateral movement of the vehicle, generating yaw velocity to give a feeling of shock to a driver or rolling may generate to give an uneasy feeling to the driver.

    [0004] An object of the present invention is to provide a vehicle including suspensions capable of varying the characteristics thereof, which can restrain the generation of the unstable factors to remove the uneasy feeling of a driver when it receives side wind and improve further the controllability.

    [0005] This object is achieved by the features of claim 1.

    [0006] When the vehicle is travelling with speed exceeding a certain speed and receives side wind, signals of the speed sensor and the pressure sensor are sent to the input of the control unit. The control unit calculates an aerodynamic sideslip angle from the size of speed and a lateral force caused by side wind. The unit controls each of the suspensions to make the characteristics thereof rigid when the lateral force exceeds a predetermined value, i.e., to increase the damping force of a shock absorber or heighten the spring constant of an air spring or increase the damping force while heightening the spring constant. When the characteristics of each of the suspensions is made rigid, the unstable factors caused by side wind are restrained by the suspensions.

    [0007] According to the present invention are obtained the following effects.

    [0008] When the vehicle is travelling with speed exceeding a certain speed and receives side wind, the characteristics of each of the suspensions is made rigid by the control unit so that the generation of unstable factors such as the lateral movement of the vehicle, the feeling of shock given to a driver by the generation of yaw velocity and rolling can be restrained to reduce a feeling of uneasiness given to the driver.

    [0009] By restraining the generation of unstable factors caused by side wind can be particularly improved the controllability during high speed travelling.

    Brief Description of the Drawings



    [0010] The other objects and features of the present invention will become apparent from the following description of a preferred embodiment of the invention with reference to the accompanying drawings, in which:

    Fig. 1 is a perspective view showing principal parts of a vehicle;

    Fig. 2 is a perspective view of the vehicle;

    Fig. 3 is a sectional view showing principal parts of a shock absorber;

    Fig. 4 is a sectional view showing an air spring;

    Fig. 5 is a view for explaining the distribution of pressure generated by side wind;

    Fig. 6 is a flow chart showing control by a control unit; and

    Figs. 7 and 8 are graphs showing characteristics.


    Description of the Preferred Embodiment



    [0011] As shown in Figs. 1 and 2, a vehicle 10 comprises four suspensions 12 supporting front, rear, left and right wheels 11 and a pressure sensor 18 having a pair of pressure detecting means 16, 17 provided on two front sides of a car body 14 suspended from the suspensions.

    [0012] The suspension 12 is provided with a shock absorber 20 capable of varying the damping force. To vary the damping force of the shock absorber 20, a bypass path is provided in a piston or a piston rod in addition to liquid paths provided inherently in the piston disposed slidably in a cylinder. It is constituted such that communication between two liquid chambers defined by the piston through the bypass path is afforded and interrupted.

    [0013] In an embodiment shown in Fig. 3, the shock absorber 20 is provided with a cylinder 22, a shell 24 spaced from the cylinder 22, a piston 26 disposed movably in the cylinder 22 and a piston rod 28 connected to the piston 26.

    [0014] The piston rod 28 has a longitudinal hole 30 extending axially from an upper end face and a bored hole 31 provided in a lower end. A connecting member 32 is forced into the bored hole 31. The connecting member 32 extends through the piston 26 and a nut 34 is screwed onto a portion of the connecting member 32 projecting from the piston so that the connecting member 32 is connected to the piston 26. Thus, the piston 26 is coupled with the piston rod 28 through the connecting member 32.

    [0015] The piston 26 has a plurality of ports 36 spaced circumferentially through which liquid flows in the extension of the piston rod 28 and a plurality of ports 38 spaced circumferentially through which liquid flows in the contraction of same. Liquid chambers A, B partitioned by the piston 26 communicate to each other through the ports 36, 38. Valve bodies 42, 46 biased respectively by coil springs 40, 44 are disposed respectively on a lower side of the ports 36 and on an upper side of the ports 38.

    [0016] On the other hand, the connecting member 32 has a hole 48 aligned with the longitudinal hole 30 in the piston rod 28, a path 49 extending from an end face over the piston 26 and a path 50 crossing the hole 48 and extending radially from the path 49 to an outer peripheral surface to constitute a bypass path for affording communication between the liquid chambers A, B.

    [0017] A control rod 52 is rotatably disposed in the longitudinal hole 30 in the piston rod 28 and the hole 48 in the connecting member 32 under the liquid-tight condition. The control rod 52 has a hole 54 extending diametrally, which is capable of communicating to the path 50, in a portion 53 inserted into the hole 48 in the connecting member 32. When the hole 54 communicates to the path 50 as shown in the drawing, the liquid chambers A, B communicate to each other through the bypass path, i.e. the path 50, hole 54 and path 49 in addition to the ports 36 or 38 in the piston 26. Therefore, an amount of liquid flowing through the ports in the piston 26 is reduced and the damping force of the shock absorber 20 is reduced. On the other hand, when the control rod 52 rotates and the hole 54 gets out of the path 50, the path 50 is insulated by the control rod 52. Therefore, the amount of liquid flowing through the ports in the piston 26 is increased and the damping force of the shock absorber 20 is increased. The control rod 52 is rotated by an actuator such as a motor.

    [0018] Fig. 4 shows an embodiment in which the spring constant of an air spring 60 together with the damping force of a shock absorber is varied. The air spring 60 has main and auxiliary air chambers 62, 64 formed to surround the shock absorber 20 shown in Fig. 3 and is constituted by enclosing compressed air into both air chambers.

    [0019] The main air chamber 62 is formed of a housing 68 welded under the air tight condition to a cylindrical spacer 66 inserted into the piston rod 28 and a rubber diaphragm 72 having one end fixed to the housing 68 and the other end fixed to an air piston 70 of the shell 24. A partition wall 74 is spanned from the housing 68 to the spacer 66 to define the auxiliary air chamber 64.

    [0020] Two holes 76, 77 extending diametrally from the longitudinal hole 30 in the piston rod 28 and spaced axially from each other are provided. The upper hole 76 communicates to the auxiliary air chamber 64 through a hole 67 in the spacer 66 and the lower hole 77 communicates to the main air chamber 62 through a hole 79 in a ring 78 welded to the piston rod 28. As a result, the main and auxiliary air chambers 62, 64 communicate to each other through these holes.

    [0021] The longitudinal hole 30 in the piston rod 28 has an upper portion expanded with respect to its diameter and a valve body 80 is rotatably disposed in the upper portion. The valve body 80 has a hole 82 bored axially from a lower end face and two holes 83, 84 extending diametrally from the hole 82 and spaced axially from each other. The holes 83, 84 can communicate respectively to the holes 76, 77 in the piston rod.

    [0022] The control rod 52 is serration fitted in the hole 82 of the valve body to be coupled with the valve body 80. An O-ring 86 is disposed in the longitudinal hole 30 of the piston rod, and the control rod 52 and the valve body 80 are inserted into the longitudinal hole 30. Further, an O-ring 88 is disposed on a shoulder of the valve body 80 and a collar 90 is press fitted into the upper portion of the hole 30, so that the valve body 80 and the control rod 52 are rotatably supported by the piston rod 28 under the liquid tight condition.

    [0023] The piston rod 28 is coupled with a car body 94 through a bushing 92. In the embodiment shown, the bushing 92 is vulcanized and bonded to two support members 96, 98 and the piston rod 28 extends through the support member 96. A washer 100 and a bracket 102 are put onto the piston rod 28 and a nut 104 is screwed onto the piston rod 28 to depress the support member 96 toward the spacer 66 so that the piston rod 28 is connected to the support member 96. On the other hand, bolts 106 serration fitted in the support member 98 extend through the car body 94 and nuts 108 are screwed onto the bolts 106 respectively to connect the support member 98 to the car body 94.

    [0024] An actuator 110 for rotating the valve body 80 consists of a motor and a reduction gear well known per se and is fixed to the piston rod 28 by the bracket 102 of a housing. A flat portion of the valve body 80 is inserted in a slit of an output shaft 111 of the actuator 110. When the valve body 80 is in the position shown, the main and auxiliary air chambers 62, 64 communicate to each other so that the spring constant of the air spring 60 is small. On the other hand, when the valve body 80 is rotated and the holes 83, 84 therein get out of the holes 76, 77 in the piston rod respectively, the valve body 80 closes the holes 76, 77. Therefore, the main air chamber 62 is insulated from the auxiliary air chamber 64 to increase the spring constant of the air spring 60. The control rod 52 is located such that the damping force of the shock absorber 20 is increased when the spring constant of the air spring 60 is large and reduced with the spring constant of same is small.

    [0025] The pressure sensor 18 is constituted from semiconductors for example to generate voltage proportional to the differential pressure detected by the pair of pressure detecting means 16, 17. In the embodiment shown in Fig. 2, each pressure detecting means is constituted from a pressure introducing pipe 19 and its port opened to the side of the car body. That is, a pair of small ports are provided respectively at symmetric positions about the surface including the longitudinal center axis of the car body on both sides thereof. That pipe 19 is inserted into each small port to form the pressure detecting means.

    [0026] When a travelling vehicle receives side wind, composite wind of the travelling wind and the side wind acts on the direction of angle ljJ measured from the surface including the longitudinal center axis of the car body so that the left and right sides of the car body 14 will differ from each other in the pressure distribution. The angle ljJ is called aerodynamic sideslip angle.

    [0027] As shown in Fig. 5, the pressure distribution varies with the size of the aerodynamic sideslip angle ljJ, for example when the angIe ψ = 0, i.e., the side wind is absent, it is (Cl), when the angle ψ is small, it is (C2) and when the angIe ψ is large, it is (C3), and varies with portions of the car body 14. And it is known that the pressure distribution has the largest negative pressure in the proximity of both front sides 15a, 15b of the car body. Thus, the pair of pressure detecting means 16, 17 are preferably disposed on both front sides 15a, 15b of the car body 14 to detect pressure in positions of the large pressure distribution.

    [0028] A vehicle speed sensor 120 (Fig. 1) detects vehicle speed in travelling to send it to the input of a control unit 122. The vehicle speed sensor 120 is provided on a proper position of the car body.

    [0029] The control unit 122 calculates the size of lateral force due to side wind according to signals of the pressure sensor 18 and the vehicle speed sensor 120. When the size of the lateral force exceeds a certain value, the control unit 122 controls the suspensions 12 to make the characteristics of the suspensions rigid.

    [0030] In the embodiment shown, the control unit 122 is a CPU, i.e., a computer.

    [0031] The relationship among the aerodynamic sideslip angle ψ, lateral force F due to side wind, vehicle speed V, differential pressure P, air density p and front area S of the car body is as follows, where K,, K2, K3 in the formula are constants:





    [0032] When the signals of the vehicle speed sensor 120 and the pressure sensor 18 are sent to the input of the control unit 122, the control unit 122 judges and calculates as shown in Fig. 6, to control the suspensions 12. After initialization (124), the vehicle speed V is put in the input (125) to be compared with a predetermined vehicle speed Vo (126). Since the aerodynamic sideslip ange U is small until the vehicle speed reaches a certain speed, the lateral force F can be neglected. Thus, it is compared with the preset vehicle speed Vo.

    [0033] When the vehicle speed V exceeds Vo, the differential pressure P is put in the input (127), and the aerodynamic sideslip angle ψ and the lateral force F are calculated (128). Here, as shown in Fig. 7, since the constant K1 varies with the vehicle speed and car type, value of the constant K, is stored previously in the control unit 122 in every range of vehicle speed corresponding to the car type so that proper constant is used to obtain first the aerodynamic sideslip angle ψ. Next, as shown in Fig. 8, the constant K2 corresponding to the car type is obtained from the aerodynamic sideslip angIe ψ and the lateral force F is obtained from the experimentally determined constant K3, fixed numbers S, p, etc.

    [0034] The lateral force F is compared with the lateral force Fo which makes the car body unstable (129) and when the obtained lateral force F exceeds Fo, the control unit 122 controls the actuator 110 of each of the suspensions 12 to make the characteristics of the suspension rigid (130). As a result, the damping force of the shock absorber 20 is increased and the spring constant of the air spring 60 is increased.

    [0035] Time T taken after making the characteristics of the suspension rigid is measured and compared with set time To varying with the car type (131). After the set time has elapsed, the characteristics of each of the suspensions is returned to the original condition (132) to complete the control.

    [0036] In said embodiment, the damping force of the shock absorber and the spring constant of the air spring are controlled simultaneously. Instead, only the damping force of the shock absorber or only the spring constant of the air spring may be controlled according to the type of suspension to make the characteristics of the suspension rigid.


    Claims

    1. A vehicle comprising: suspensions capable of varying the characteristics thereof, a pressure sensor (18) having pressure detecting means (16, 17) provided respectively on both sides of a car body (14) suspended from the suspensions (12), and a control unit (122) for controlling the suspensions to make the characteristics thereof rigid when the size of the lateral force exceeds a predetermined value, characterized by a vehicle speed sensor (120) provided on the car body (14) and in that the control unit (122) receives signals from the pressure sensor (18; and the vehicle speed sensor (120) and gets lateral force from the detected pressure and vehicle speed when the detected vehicle speed exceeds a predetermined value.
     
    2. A vehicle (10) as claimed in claim 1, wherein each of said suspensions (12) includes a shock absorber (20) capable of adjusting the damping force or an air spring (60) capable of adjusting the spring constant or the shock absorber (20) capable of adjusting the damping force and the air spring (60) capable of adjusting the spring constant.
     
    3. A vehicle (10) as claimed in claim 1 or 2, wherein said both sides are ones in front portions (15a, 15b) of the car body (14) having large pressure distribution.
     
    4. A vehicle (10) as claimed in one of the claims 1 to 3, wherein said each pressure detecting means (16,17) includes a small port provided said each side and a pipe (19) communicating to the small port and said pressure sensor (18) generates differential pressure detected by the two pressure detecting means (16, 17).
     
    5. A vehicle (10) as claimed in one of the claims 1 to 4, wherein said control unit (122) returns the characteristics of each of the suspensions (12) to the original condition after a predetermined time elapses after making the characteristics of each of the suspensions (12) rigid.
     
    6. A vehicle as claimed in one of the claims 1 to 5, wherein said pressure sensor (18) includes small ports respectively provided on the front sides (15a, 15b) of said car body (14) and has large pressure distribution and pipes (19) connected to the small ports to generate the output of differential pressure.
     


    Ansprüche

    1. Fahrzeug mit Aufhängung, die imstande sind, ihre Kenndaten zu verändern, einem Druckfühler (18), der mit Druckermittlungseinrichtungen (16, 17) an jeweils beiden Seiten eines von den Aufhängungen (12) getragenen Fahrzeugaufbaus (14) versehen ist, und einem Steuergerät (122), das die Aufhängungen regelt, um deren Kenndaten steif zu machen, wenn die Größe der seitlichen Kraft einen vorbestimmten Wert überschreitet, dadurch gekennzeichnet, daß ein Fahrzeug-Geschwindigkeitsfühler (120) am Fahrzeugaufbau (14) vorgesehen ist und daß das Steuergerät (122) Signale von dem Druckfühler (18) sowie dem Fahrzeug-Geschwindigkeitsfühler (120) empfängt und aus dem ermittelten Druck sowie der ermittelten Fahrgeschwindigkeit, wenn die ermittelte Fahrgeschwindigkeit einen vorbestimmten Wert überschreitet, eine Seitenkraft gewinnt.
     
    2. Fahrzeug (10) nach Anspruch 1, wobei jede der genannten Aufhängungen (12) einen Stoßdämpfer (20), der zur Einregelung der Dämpfungskraft imstande ist, oder eine Luftfeder (60), die zur Einstellung der Federkonstanten imstande ist, umfaßt oder der Stoßdämpfer (20) zur Regelung der Dämpfungskraft und die Luftfeder (60) zur Regelung der Federkonstanten imstande sind.
     
    3. Fahrzeug (10) nach Anspruch 1 oder 2, wobei die erwähnten beiden Seiten solche in Frontbereichen (15a, 15b) des Fahrzeugs mit einer größeren Druckausbreitung sind.
     
    4. Fahrzeug (10) nach einem der Ansprüche 1 bis 3, wobei jede besagte Druckermittlungseinrichtung (16, 17) eine kleine, an jeder erwähnten Seite vorgesehene Öffnung sowie eine mit der kleinen Öffnung verbundene Rohrleitung (19) umfaßt und der erwähnte Druckfühler (18) einen durch die beiden Druckermittlungseinrichtungen (16, 17) ermittelten Differenzdruck erzeugt.
     
    5. Fahrzeug (10) nach einem der Ansprüche 1 bis 4, wobei das genannte Steuergerät (122) die Kenndaten einer jeden der Aufhängungen (12) in den Ausgangszustand zurückversetzt, nachdem eine vorbestimmte Zeit nach dem Steifmachen der Kenndaten einer jeden der Aufhängungen (12) verstreicht.
     
    6. Fahrzeug nach einem der Ansprüche 1 bis 5, wobei der erwähnte Druckfühler (18) jeweils an den Frontbereichen (15a, 15b) des besagten Fahrzeugaufbaus (14) vorgesehene kleine Öffnungen umfaßt und eine große Druckausbreitung sowie Rohrleitungen (19), die mit den kleinen Öffnungen verbunden sind, um den Ausgang eines Differenzdrucks zu erzeugen, hat.
     


    Revendications

    1. Un véhicule comprenant:

    des suspensions dont les caractéristiques peuvent varier; un capteur de pression (18) muni de moyens de détection de pression (16, 17) ménagés respectivement sur deux côtés d'une carrosserie de véhicule (14) suspendue par des suspensions (12) et une unité de commande (122) pour commander les suspensions de manière à rendre les caractéristiques de celles-ci raides lorsque la valeur de la force latérale excède une valeur prédéterminée; caractérisé par un capteur de vitesse de véhicule (120) ménage sur la carrosserie du véhicule (14) et en ce que l'unité de commande (122) reçoit des signaux provenant du détecteur de pression (18) et du détecteur de vitesse de véhicule (120) et obtient la force latérale à partir de la pression et de la vitesse de véhicule détectées lorsque la vitesse de véhicule détectée dépasse une valeur prédéterminée.


     
    2. Un véhicule (10) tel que revendiqué dans la revendication 1, dans lequel chacune des suspensions (12) comprend un amortisseur (20) capable de régler la force d'amortissement ou un ressort pneumatique (60) capable de régler la constante élastique ou un amortisseur (20) capable de régler la force d'amortissement et le ressort pneumatique (60) capable de régler la constante élastique.
     
    3. Un véhicule (10) tel que revendiqué dans la revendication 1 ou 2, dans lequel lesdits deux côtés sont dans des parties avant (15a, 15b) de la carrosserie du véhicule (14) qui sont soumises à une pression importante.
     
    4. Un véhicule (10) tel que revendiqué dans l'une des revendications 1 à 3, dans lequel chacun desdits moyens de détection de pression (16, 17) comprend un petit orifice ménagé de chaque côté et une conduite (19) communiquant avec ce petit orifice et dans lequel le détecteur de pression (18) engendre une pression différentielle détectée par les deux moyens détecteurs de pression (16, 17).
     
    5. Un véhicule (10) comme revendiqué dans l'une des revendications 1 à 4, dans lequel ladite unité de commande (122) ramène les caractéristiques de chacune des suspensions (12) à l'état initial après qu'un temps prédéterminé se soit écoulé après que les caractéristiques de chacune des suspensions (12) aient été rendues rigides.
     
    6. Un véhicule comme revendiqué dans l'une des revendications 1 à 5, dans lequel ledit capteur de pression (18) comprend de petits orifices respectivement ménagés sur les faces avant (15a, 15b) de ladite carrosserie de véhicule (14) soumises à une pression importante ainsi que des conduites (19) reliées aux petits orifices pour produire une pression différentielle.
     




    Drawing